Approaches to diagnose DNA mismatch repair gene defects in cancer
Javier Peña-Diaz1, Lene Juel Rasmussen2
1Center for Healthy Aging, Department of Neuroscience and Pharmacology, University of Copenhagen, DK-2200 Copenhagen, Denmark.
Abstract:
The DNA repair pathway mismatch repair (MMR) is responsible for the recognition and correction of DNA biosynthetic errors caused by inaccurate nucleotide incorporation during replication. Faulty MMR leads to failure to address the mispairs or insertion deletion loops (IDLs) left behind by the replicative polymerases and results in increased mutation load at the genome. The realization that defective MMR leads to a hypermutation phenotype and increased risk of tumorigenesis highlights the relevance of this pathway for human disease. The association of MMR defects with increased risk of cancer development was first observed in colorectal cancer patients that carried inactivating germline mutations in MMR genes and the disease was named as hereditary non-polyposis colorectal cancer (HNPCC). Currently, a growing list of cancers is found to be MMR defective and HNPCC has been renamed Lynch syndrome (LS) partly to include the associated risk of developing extra-colonic cancers. In addition, a number of non-hereditary, mostly epigenetic, alterations of MMR genes have been described in sporadic tumors. Besides conferring a strong cancer predisposition, genetic or epigenetic inactivation of MMR genes also renders cells resistant to some chemotherapeutic agents. Therefore, diagnosis of MMR deficiency has important implications for the management of the patients, the surveillance of their relatives in the case of LS and for the choice of treatment. Some of the alterations found in MMR genes have already been well defined and their pathogenicity assessed. Despite this substantial wealth of knowledge, the effects of a large number of alterations remain uncharacterized (variants of uncertain significance, VUSs). The advent of personalized genomics is likely to increase the list of VUSs found in MMR genes and anticipates the need of diagnostic tools for rapid assessment of their pathogenicity. This review describes current tools and future strategies for addressing the relevance of MMR gene alterations in human disease.
Insights
DNA mismatch repair (MMR) corrects replication errors, preventing cancer. Understanding MMR gene alterations is crucial for diagnosing Lynch syndrome and guiding cancer treatment strategies.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- The mismatch repair (MMR) pathway corrects DNA replication errors, preventing mutations and cancer.
- Defects in MMR lead to a hypermutation phenotype and increased cancer risk, notably in Lynch syndrome (LS).
- MMR gene alterations are implicated in both hereditary (LS) and sporadic cancers, impacting treatment response.
Purpose of the Study:
- To review current tools and future strategies for assessing the pathogenicity of MMR gene alterations.
- To highlight the clinical significance of diagnosing MMR deficiency for patient management and treatment selection.
- To address the growing challenge of variants of uncertain significance (VUSs) in MMR genes due to personalized genomics.
Main Methods:
- Review of existing literature on MMR pathway function, genetic alterations, and clinical implications.
- Analysis of diagnostic tools and assessment strategies for MMR gene variants.
- Discussion of emerging approaches for evaluating pathogenicity of uncharacterized MMR alterations.
Main Results:
- MMR deficiency is linked to a wide range of cancers and influences therapeutic outcomes.
- A significant number of MMR gene alterations remain uncharacterized as variants of uncertain significance (VUSs).
- Personalized genomics is increasing the identification of VUSs in MMR genes.
Conclusions:
- Accurate assessment of MMR gene alterations is vital for cancer diagnosis, risk prediction, and personalized treatment.
- Developing rapid and reliable diagnostic tools for MMR VUSs is a priority.
- Further research into MMR gene alterations will improve understanding and management of MMR-deficient cancers.
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